Department of Chemical and Environmental Engineering, Yale University, New Haven, Connecticut 06520-8286, United States.
Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT), 6100 Main Street, MS 6398, Houston, Texas 77005, United States.
Environ Sci Technol. 2023 Apr 18;57(15):6331-6341. doi: 10.1021/acs.est.3c00445. Epub 2023 Apr 6.
Separation of specific ions from water could enable recovery and reuse of essential metals and nutrients, but established membrane technologies lack the high-precision selectivity needed to facilitate a circular resource economy. In this work, we investigate whether the cation/cation selectivity of a composite cation-exchange membrane (CEM), or a thin polymer selective layer on top of a CEM, may be limited by the mass transfer resistance of the underlying CEM. In our analysis, we utilize a layer-by-layer technique to modify CEMs with a thin polymer selective layer (∼50 nm) that has previously shown high selectivity toward copper over similarly sized metals. While these composite membranes have a CuCl/MgCl selectivity up to 33 times larger than unmodified CEMs in diffusion dialysis, our estimates suggest that eliminating resistance from the underlying CEM could further increase selectivity twofold. In contrast, the CEM base layer has a smaller effect on the selectivity of these composite membranes in electrodialysis, although these effects could become more pronounced for ultrathin or highly conductive selective layers. Our results highlight that base layer resistance prevents selectivity factors from being comparable across diffusion dialysis and electrodialysis, and CEMs with low resistance are necessary for providing highly precise separations with composite CEMs.
从水中分离特定离子可以实现关键金属和营养物质的回收和再利用,但现有的膜技术缺乏促进循环资源经济所需的高精度选择性。在这项工作中,我们研究了复合阳离子交换膜(CEM)或 CEM 顶部的薄聚合物选择层的阳离子/阳离子选择性是否可能受到 CEM 底层传质阻力的限制。在我们的分析中,我们利用层层技术用先前显示出对铜比对类似尺寸的金属具有更高选择性的薄聚合物选择层(约 50nm)对 CEM 进行改性。虽然这些复合膜在扩散透析中的 CuCl/MgCl 选择性比未改性的 CEM 高 33 倍,但我们的估计表明,消除底层 CEM 的阻力可以将选择性进一步提高一倍。相比之下,尽管对于超薄或高导电性的选择层,这些效应可能更加明显,但 CEM 基底层对这些复合膜在电渗析中的选择性的影响较小。我们的结果强调了底层阻力会阻止扩散透析和电渗析中选择性因子的可比性,并且对于使用复合 CEM 进行高度精确分离,低阻力的 CEM 是必要的。